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Extraction of echocardiographic data from the electronic medical record is a rapid and efficient method for study of cardiac structure and function

机译:从电子病历中提取超声心动图数据是研究心脏结构和功能的一种快速有效的方法

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Background Measures of cardiac structure and function are important human phenotypes that are associated with a range of clinical outcomes. Studying these traits in large populations can be time consuming and costly. Utilizing data from large electronic medical records (EMRs) is one possible solution to this problem. We describe the extraction and filtering of quantitative transthoracic echocardiographic data from the Epidemiologic Architecture for Genes Linked to Environment (EAGLE) study, a large, racially diverse, EMR-based cohort (n?=?15,863). Results There were 6,076 echocardiography reports for 2,834 unique adult subjects. Missing data were uncommon with over 90% of data points present. Data irregularities are primarily related to inconsistent use of measurement units and transcriptional errors. The reported filtering method requires manual review of very few data points (<1%), and filtered echocardiographic parameters are similar to published data from epidemiologic populations of similar ethnicity. Moreover, the cohort is comparable in size, and in some cases larger than community-based cohorts of similar race/ethnicity. Conclusions These results demonstrate that echocardiographic data can be efficiently extracted from EMRs, and suggest that EMR-based cohorts have the potential to make major contributions toward the study of epidemiologic and genotype-phenotype associations for cardiac structure and function in diverse populations.
机译:背景技术心脏结构和功能的测量是重要的人类表型,与一系列临床结果相关。在大量人群中研究这些特征可能既耗时又昂贵。利用大型电子病历(EMR)中的数据是解决此问题的一种可能方法。我们描述了从与环境有关的基因的流行病学架构(EAGLE)研究中提取的经胸超声心动图定量数据的提取和过滤,该研究是一个大型的,基于种族的,基于EMR的队列(n = 15863)。结果有2,834名独特的成人受试者的6,076例超声心动图报告。丢失数据的情况很少见,其中存在超过90%的数据点。数据不规范主要与测量单位使用不一致和转录错误有关。报告的过滤方法需要人工检查很少的数据点(<1%),并且过滤的超声心动图参数与来自相似种族的流行病学人群的已公布数据相似。此外,该队列的规模可比,并且在某些情况下大于种族/民族相似的社区队列。结论这些结果表明,可以从EMR中有效提取超声心动图数据,并表明基于EMR的研究组有可能为研究不同人群心脏结构和功能的流行病学和基因型-表型相关性做出重大贡献。

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